Controlled waveform welding wire feeder system and method
Summary by NHIP
Waveform welding wire feeder
The system drives welding wire while converting input power to controlled waveform output. It uses a power relay and parallel bypass circuitry to establish alternating current paths through the relay and bypass during operation.
Claim Score by NHIP
Abstract
A welding wire feeder includes a welding wire feed drive configured to drive welding wire towards a welding application and wire feed control circuitry coupled to the welding wire feed drive. The wire feed control circuitry is also configured to control the drive of welding wire towards the welding application. The welding wire feeder also includes power conversion circuitry and welding process control circuitry coupled to the power conversion circuitry. The power conversion circuitry is configured to receive input power from a welding power source and to convert the input power to controlled waveform welding output. The welding process control circuitry is configured to provide control signals for conversion of the input power to the controlled waveform welding output. The welding wire feeder also includes a process operator interface coupled to the welding process control circuitry and configured to permit operator selection of a controlled waveform welding process.

Term
7.6 yearsleft in the term
Expires 15 May 2034, including 426 days of term adjustment.
- Priority
- Filed
- Granted
- Today
- Expires
20 claims: 3 independent, 17 dependent
- 1A welding wire feeder comprising:a welding wire feed drive configured to drive welding wire towards a welding application;wire feed control circuitry coupled to the welding wire feed drive and configured to control the drive of welding wire towards the welding application;a power relay configured to receive input power via a power cable from a welding power source and to close to convey the input power to power conversion circuitry of the welding wire feeder;bypass circuitry coupled in parallel with the power relay and configured to carry the input power during opening and closing of the power relay;the power conversion circuitry configured to receive the input power via the power relay and to convert the input power to controlled waveform welding output;welding process control circuitry coupled to the power conversion circuitry, the power relay, and the bypass circuitry, and configured to provide control signals for conversion of the input power to the controlled waveform welding output, to apply control signals to the power relay to close to establish a first current carrying path of the input power to the power conversion circuitry through the power relay, and to apply control signals to the bypass circuitry to close to establish a second current carrying path of the input power to the power conversion circuitry through the bypass circuitry in coordination with closing and opening of the power relay;communications circuitry configured to send and receive command or feedback signals over the power cable;and a process operator interface coupled to the welding process control circuitry and configured to permit operator selection of a controlled waveform welding process.
- 9A welding system comprising:a welding power source configured to provide input power;and a welding wire feeder configured to be coupled to the welding power source via a power cable, to be located remotely from the welding power source, and to receive the input power via the power cable, the welding wire feeder comprising: a welding wire feed drive configured to drive welding wire towards a welding application;wire feed control circuitry coupled to the welding wire feed drive and configured to control the drive of welding wire towards the welding application;communications circuitry configured to send and receive command or feedback signals over the power cable used to provide the input power;a power relay configured to receive the input power via the power cable from the welding power source and to close to convey the input power to power conversion circuitry of the welding wire feeder;bypass circuitry coupled in parallel with the power relay and configured to carry the input power during opening and closing of the power relay;and power conversion circuitry configured to receive the input power from the power relay or the bypass circuitry and to convert the input power to controlled waveform welding output, wherein the power cable comprises an inductance, and the power conversion circuitry is configured to reduce an effect of the inductance on the controlled waveform welding output.
- 15Broadest claimClaim Score 42, average(NHIP)A method of operating a welding wire feeder comprising:receiving an input power from a welding power source via a power cable;receiving a first operator selection of a welding power source parameter at an operator interface of the welding wire feeder;controlling the welding power source via one or more commands based at least in part on the first operator selection, wherein the one or more commands are transmitted along the power cable from the welding wire feeder;controlling a power relay configured to receive the input power via the power cable from the welding power source to open and close to convey the input power to power conversion circuitry of the welding wire feeder;controlling bypass circuitry coupled in parallel with the power relay to carry the input power during opening and closing of the power relay;converting the input power to controlled waveform welding output at the power conversion circuitry without regard to an inductance of the power cable;and providing the controlled waveform welding output and a welding wire to a welding torch.
Independent claims3
83 paragraphs in 5 sections, as filed
CROSS-REFERENCE TO RELATED APPLICATION
This application claims priority from and the benefit of U.S. Provisional Application Ser. No. 61/657,467, entitled “CONTROLLED WAVEFORM WELDING WIRE FEEDER SYSTEM AND METHOD,” filed Jun. 8, 2012, which is hereby incorporated by reference in its entirety for all purposes.
BACKGROUND
The invention relates generally to welding systems, and, more particularly, to controlled waveform welding wire feeder systems and methods.
Welding systems support a variety of processes, such as metal inert gas (MIG) welding, tungsten inert gas (TIG) welding, stick welding, and so forth, which may operate in different modes, such as constant current or constant voltage. Certain welding applications, such as boiler servicing and repair, shipyard work, construction, and so forth, may position a welding location or workpiece large distances from a welding power source.
Power cables supply output power to a welding application from the welding power source. Advanced forms of MIG welding are based upon generation of pulsed power to deposit welding wire on the workpiece. Unfortunately, lengthy power cables between a welding power source and a welding application introduce variable inductance that affects the timing or amplitude of the pulses.
BRIEF DESCRIPTION
Certain embodiments commensurate in scope with the originally claimed invention are summarized below. These embodiments are not intended to limit the scope of the claimed invention, but rather these embodiments are intended only to provide a brief summary of possible forms of the invention. Indeed, the invention may encompass a variety of forms that may be similar to or different from the embodiments set forth below.
In one embodiment, a welding wire feeder includes a welding wire feed drive configured to drive welding wire towards a welding application and wire feed control circuitry coupled to the welding wire feed drive. The wire feed control circuitry is also configured to control the drive of welding wire towards the welding application. The welding wire feeder also includes power conversion circuitry and welding process control circuitry coupled to the power conversion circuitry. The power conversion circuitry is configured to receive input power from a welding power source and to convert the input power to controlled waveform welding output. The welding process control circuitry is configured to provide control signals for conversion of the input power to the controlled waveform welding output. The welding wire feeder also includes a process operator interface coupled to the welding process control circuitry and configured to permit operator selection of a controlled waveform welding process.
In another embodiment, a welding system includes a welding power source configured to provide input power and a welding wire feeder configured to be coupled to the welding power source via a power cable, to be located remotely from the welding power source, and to receive the input power via the power cable. The welding wire feeder includes a welding wire feed drive configured to drive welding wire towards a welding application and wire feed control circuitry coupled to the welding wire feed drive. The wire feed control circuitry is also configured to control the drive of welding wire towards the welding application. The welding wire feeder also includes power conversion circuitry configured to receive the input power and to convert the input power to controlled waveform welding output. The power cable has an inductance, and the power conversion circuitry is configured to reduce an effect of the inductance on the controlled waveform welding output.
In another embodiment, a method of operating a welding wire feeder includes receiving an input power from a power source via a power cable and converting the input power to controlled waveform welding output without regard to an inductance of the power cable. The method also includes providing the controlled waveform welding output and a welding wire to a welding torch.
DRAWINGS
These and other features, aspects, and advantages of the present invention will become better understood when the following detailed description is read with reference to the accompanying drawings in which like characters represent like parts throughout the drawings, wherein:
<figref idref="DRAWINGS">FIG. 1</figref> is a block diagram of a welding system having a welding power source and an advanced process wire feeder in accordance with aspects of the present disclosure;
<figref idref="DRAWINGS">FIG. 2</figref> is a block diagram of an embodiment of the advanced process wire feeder of <figref idref="DRAWINGS">FIG. 1</figref>;
<figref idref="DRAWINGS">FIG. 3</figref> is a front perspective view of an advanced process wire feeder in accordance with aspects of the present disclosure;
<figref idref="DRAWINGS">FIG. 4</figref> is a top view of an embodiment of the advanced process wire feeder of <figref idref="DRAWINGS">FIG. 3</figref>;
<figref idref="DRAWINGS">FIG. 5</figref> is a block diagram of an embodiment of the advanced process wire feeder employing power conversion circuitry, relay circuitry, sensing circuitry, and a wire feed assembly in accordance with aspects of the present disclosure;
<figref idref="DRAWINGS">FIG. 6</figref> is a schematic diagram of an embodiment of the relay circuitry of <figref idref="DRAWINGS">FIG. 5</figref>;
<figref idref="DRAWINGS">FIG. 7</figref> is a flow chart of an embodiment of a process for producing controlled waveform output using an advanced process wire feeder;
<figref idref="DRAWINGS">FIG. 8</figref> is a flow chart of an embodiment of a process for sensing polarity of input power supplied to an advanced process wire feeder;
<figref idref="DRAWINGS">FIG. 9A</figref> is a first part of a flow chart of an embodiment of a process for actuating relay circuitry of an advanced process wire feeder;
<figref idref="DRAWINGS">FIG. 9B</figref> is a second part of the flow chart of <figref idref="DRAWINGS">FIG. 9A</figref> of the process for actuating relay circuitry of the advanced process feeder;
<figref idref="DRAWINGS">FIG. 10</figref> is a flow chart of an embodiment of a process for adjusting power conversion circuitry of an advanced process wire feeder;
<figref idref="DRAWINGS">FIG. 11</figref> is a chart of bus voltage, input current, output voltage, and output current versus time;
<figref idref="DRAWINGS">FIG. 12</figref> is another chart of bus voltage, input current, output voltage, and output current versus time;
<figref idref="DRAWINGS">FIG. 13</figref> is a diagram of an exemplary circuit for controlling application of power to a welding component such as a wire feeder or pendant during power-up or connection of the component to a welding power supply;
<figref idref="DRAWINGS">FIG. 14</figref> is a somewhat more detailed diagram of an exemplary circuit for controlling inrush current to a welding pendant; and
<figref idref="DRAWINGS">FIG. 15</figref> is a similar detailed diagram of an exemplary circuit for controlling inrush current to a welding wire feeder.
DETAILED DESCRIPTION
<figref idref="DRAWINGS">FIG. 1</figref> is a block diagram of an embodiment of a welding system <b>10</b> which powers a welding application. As illustrated, the welding system <b>10</b> includes a welding power source <b>12</b> and a coupled welding torch <b>14</b>. The welding power source <b>12</b> supplies input power to the welding torch <b>14</b>. The welding torch <b>14</b> may be a torch configured for stick welding, tungsten inert gas (TIG) welding, or gas metal arc welding (GMAW), based on the desired welding application. In some embodiments, the welding power source <b>12</b> supplies input power to a pendant <b>16</b> coupled to a torch <b>14</b> configured for stick welding or TIG welding. The operator supplies the filler metal, if any, for stick or TIG welding. The pendant <b>16</b> may be configured to control the power source <b>12</b> and/or notify the operator of welding parameters. In other embodiments, the welding power source <b>12</b> supplies input power to a standard wire feeder <b>18</b>. The standard wire feeder <b>18</b> supplies the input power and filler metal to a welding torch <b>14</b> configured for GMAW welding or flux core arc welding (FCAW). In some embodiments, the welding power source <b>12</b> supplies input power to an advanced process wire feeder <b>20</b>. The advanced process wire feeder <b>20</b> is configured to convert the input power of the welding power source <b>12</b> to welding output. In some embodiments, the welding output of the advanced process wire feeder <b>20</b> may be a controlled waveform welding output. Controlled waveform welding outputs include welding outputs adapted to a pulsed welding process or a short circuit welding process.
The welding power source <b>12</b> is coupled to an alternating current (AC) source <b>22</b>, such as an electrical grid or engine-driven generator that supplies primary power. The welding power source <b>12</b> may process the primary power to input power supplied to the welding torch <b>14</b> via power cables <b>24</b>. In some embodiments, the power cables <b>24</b> includes a first terminal <b>26</b> and a second terminal <b>28</b>, wherein one terminal has a positive polarity and the other has a negative polarity. Power conversion circuitry <b>30</b> converts the AC current to input power as either direct current (DC) or AC. The power conversion circuitry <b>30</b> may include circuit elements such as transformers, switches, boost converters, inverters, and so forth, capable of converting power as dictated by the demands of the welding system <b>12</b>. In some embodiments, the power conversion circuitry <b>30</b> is configured to convert the primary power to an approximately 80V DC input power to supply the pendant <b>16</b>, standard wire feeder <b>18</b>, or advanced process wire feeder <b>20</b>. The input power may be between approximately 50 to 120V DC.
The welding power source <b>12</b> includes control circuitry <b>32</b> and an operator interface <b>34</b>. The control circuitry <b>32</b> controls the operations of the welding power source <b>12</b> and may receive input from the operator interface <b>34</b> through which an operator may choose a welding process (e.g., stick, TIG, MIG) and input desired parameters of the input power (e.g., voltages, currents, particular pulsed or non-pulsed welding regimes, and so forth). The control circuitry <b>32</b> may be configured to receive and process a plurality of inputs regarding the performance and demands of the system <b>12</b>. The control circuitry <b>102</b> may include volatile or non-volatile memory, such as ROM, RAM, magnetic storage memory, optical storage memory, or a combination thereof. In addition, a variety of control parameters may be stored in the memory along with code configured to provide a specific output (e.g., reverse polarity, pre-charge capacitor, enable gas flow, etc.) during operation.
The welding power source <b>12</b> may include polarity reversing circuitry <b>36</b> and communications circuitry <b>38</b> coupled to the control circuitry <b>32</b>. The polarity reversing circuitry <b>36</b> reverses the polarity of the first and second terminals <b>26</b>, <b>28</b> when directed by the control circuitry <b>32</b>. For example, some welding processes, such as TIG welding, may enable a desired weld when the electrode has a negative polarity, known as DC electrode negative (DCEN). Other welding processes, such as stick or GMAW welding, may enable a desired weld when the electrode has a positive polarity, known as DC electrode positive (DCEP). When switching between a TIG welding process and a GMAW welding process, the polarity reversing circuitry <b>36</b> may be configured to reverse the polarity from DCEN to DCEP. The operator may reverse the polarity manually, or the control circuitry <b>32</b> may direct the polarity reversing circuitry <b>36</b> to reverse the polarity in response to signals received through the communications circuitry <b>38</b>. The communications circuitry <b>38</b> is configured to communicate with the welding torch <b>14</b>, pendant <b>16</b>, standard wire feeder <b>18</b>, advanced wire feeder <b>20</b>, and/or other device coupled to the power cables <b>24</b>. In some embodiments, the communications circuitry <b>38</b> is configured to send and receive command and/or feedback signals over the welding power cables <b>24</b> used to supply the input power. In other embodiments, the communications circuitry <b>38</b> is configured to communicate wirelessly with another device.
Devices including the pendant <b>16</b>, standard wire feeder <b>18</b>, and advanced process wire feeder <b>20</b> receive input power through the input terminal <b>40</b> configured to couple with the first and second terminals <b>26</b>, <b>28</b> of the power cables <b>24</b>. In some embodiments, the first terminal <b>26</b> is configured to connect with the input terminal <b>40</b> and the second terminal <b>28</b> is configured to connect with the clamp <b>42</b> coupled to the workpiece <b>44</b>. In some embodiments, the input terminal <b>40</b> has input connections with defined polarities configured to couple to the respective first and second terminals <b>26</b>, <b>28</b> of the same polarities, and the clamp <b>42</b> couples to the pendant <b>16</b> or wire feeder <b>18</b>. The advanced process wire feeder <b>20</b> is configured to couple to the first and second terminals <b>26</b>, <b>28</b> with input terminals <b>40</b>, and the clamp <b>42</b> is coupled to the advanced process wire feeder <b>20</b>.
For some welding processes (e.g., TIG, GMAW), a shielding gas is utilized during welding. In some embodiments, as shown in the dashed lines, the welding power source <b>12</b> includes one or more gas control valves <b>46</b> configured to control a gas flow from a gas source <b>48</b>. The gas control valves <b>46</b> may be controlled by the control circuitry <b>32</b>. The welding power source <b>12</b> may be coupled to one or more gas sources <b>48</b> because some welding processes may utilize different shielding gases than others. In some embodiments, the welding power source <b>12</b> is configured to supply the gas with the input power via a combined input cable <b>50</b>. In other embodiments, the gas control valves <b>46</b> and gas source <b>48</b> may be separate from the welding power source <b>12</b>. For example, the gas control valves <b>46</b> may be disposed within the standard or advanced wire feeder <b>18</b>, <b>20</b>. The standard and advanced wire feeders <b>18</b>, <b>20</b> shown in <figref idref="DRAWINGS">FIG. 1</figref> are coupled to GMAW torches <b>52</b> configured to supply the gas and welding wire <b>54</b> to the welding application.
<figref idref="DRAWINGS">FIG. 2</figref> illustrates a block diagram an embodiment of the advanced process wire feeder <b>20</b> for converting input power to controlled waveform welding output. The advanced process wire feeder <b>20</b> receives the input power from the welding power source through input terminals <b>40</b> coupled to process circuitry <b>56</b>. In some embodiments, the advanced process wire feeder <b>20</b> is operated remotely from the welding power source with long power cables. Process circuitry <b>56</b> may include circuitry such as relay circuitry, voltage and current sensing circuitry, power storage circuitry, and so forth, capable of sensing and controlling the input power received by the advanced process wire feeder <b>20</b>. The process circuitry <b>56</b> transmits the input power to the power conversion circuitry <b>58</b>.
Power conversion circuitry <b>58</b> is configured to convert the input power from the welding power source to welding output suitable for performing welding applications. Power conversion circuitry <b>58</b> may include circuit elements such as boost converters, buck converters, an internal bus, bus capacitor, voltage and current sensors, and so forth, capable of converting the input power to welding output. In some embodiments, input power received by the advanced process wire feeder <b>20</b> is a DC voltage between approximately 20V to 120V, approximately 40V to 100V, or approximately 60V to 80V. As used in reference to the input power, the term approximately may mean within 5 volts or within 10 percent of the desired voltage. The power conversion circuitry <b>58</b> may be configured to convert the input power to a controlled waveform welding output, such as a pulsed welding process or a short circuit welding process (e.g., regulated metal deposition (RMD™)). The power conversion circuitry <b>58</b> disposed within the advanced process wire feeder <b>20</b> supplies the controlled waveform welding output for the welding application without attenuation from the power cable between the welding power source and the advanced process wire feeder <b>20</b>. This increases the response time and accuracy of the controlled waveform welding output supplied to the welding torch. Increasing the response time of the controlled waveform welding output may ensure that the desired welding output waveform is supplied to welding torch at specific times during the weld. For example, the RMD™ welding process utilizes a controlled waveform welding output having a current waveform that varies at specific points in time over a short circuit cycle. Increasing the response time of the controlled waveform welding output may also improve the timing of the waveform pulses to produce a desired weld.
In some embodiments, the power conversion circuitry <b>58</b> is configured to provide the welding output to the wire feed assembly <b>60</b>. The wire feed assembly <b>60</b> supplies welding wire <b>54</b> to the welding torch for the welding operation. The wire feed assembly <b>60</b> includes elements such as a spool, wire feed drive, drive rolls, and wire feed control circuitry. The wire feed assembly <b>60</b> feeds welding wire <b>54</b> to the welding torch along a weld cable <b>62</b>. The welding output may be supplied through the weld cable <b>62</b> coupled to the welding torch and/or the work cable <b>64</b> coupled to the workpiece.
Presently contemplated embodiments of the advanced process wire feeder <b>20</b> have a process operator interface <b>66</b> and a control operator interface <b>68</b> for control of parameters of the welding system. The process operator interface <b>66</b> is coupled to the process circuitry <b>56</b> for operator selection and adjustment of the welding process (e.g., pulsed, short-circuit, FCAW) through selection of the wire size, wire type, material, and gas parameters. The process operator interface <b>66</b> is coupled to the wire feed assembly <b>60</b> for control of supplying the welding wire <b>54</b> to the welding torch. The control operator interface <b>68</b> is coupled to the process circuitry <b>56</b> to adjust the voltage, amperage, wire feed speed, and arc length for a welding application. In some embodiments, the process operator interface <b>66</b> and the control operator interface <b>68</b> are separate interfaces, each with respective control circuitry. Alternatively, the process operator interface <b>66</b> and the control operator interface <b>68</b> may have common control circuitry and/or form a common control and process operator interface. The process operator interface <b>66</b> and/or the control operator interface <b>68</b> may include volatile or non-volatile memory, such as ROM, RAM, magnetic storage memory, optical storage memory, or a combination thereof. In addition, a variety of parameters may be stored in the memory along with code configured to provide a specific output for default parameters during operation.
The process interface <b>66</b> is configured to receive input such as wire material (e.g., steel, aluminum), wire type (e.g., solid, cored), wire diameter, gas type, and so forth. Upon receiving the input, the process circuitry <b>56</b> is configured to determine the controlled waveform welding output for the welding application. For example, the process circuitry <b>56</b> determines the pulse width, relative pulse amplitude, and/or wave shape for a controlled waveform welding output process based at least in part on the input received through the process interface <b>66</b>. The wire feed assembly <b>60</b> may be configured to supply the welding wire <b>54</b> based on code or instructions stored in memory based on the received input. The wire feed assembly <b>60</b> is coupled to a process operator interface <b>66</b> and control operator interface <b>68</b> for controlling the welding wire <b>54</b> supplied for a welding operation. The wire feed assembly <b>60</b> adjusts parameters for supplying the welding wire <b>54</b> to the welding torch based at least in part on operator input received via the process operator interface <b>66</b> or the operator interface <b>68</b>. The control operator interface <b>68</b> is configured to receive operator input for parameters such as the amperage, voltage, polarity, wire feed rate, arc length, process type (e.g., RMD™, pulsed welding), and so forth. In some embodiments, the control operator interface is configured to adjust the power of the controlled waveform welding output without affecting the shape of the controlled waveform welding output. The process circuitry <b>56</b> adjusts the power conversion circuitry <b>58</b> and wire feed assembly <b>60</b> based at least in part on operator input received via the control operator interface <b>68</b>. In some embodiments, communications circuitry <b>70</b> coupled to the process circuitry <b>56</b> is configured to send and receive command and/or feedback signals over the power cable used to provide the input power. The communications circuitry <b>70</b> enables the process operator interface <b>66</b> and/or control operator <b>68</b> to control the welding power source. For example, the process operator interface <b>66</b> and/or control operator <b>68</b> may be configured to control the amperage, voltage, or other parameters of the input power supplied by the welding power source. In some embodiments, the process circuitry <b>56</b> controls the welding power source remote from the welding power source without being restricted to parameters set on the operator interface <b>34</b> (<figref idref="DRAWINGS">FIG. 1</figref>). That is, the process circuitry <b>56</b> and communications circuitry <b>70</b> enables an operator to control the welding power source remotely through the advanced process wire feeder <b>20</b> with equal control priority to the operator interface <b>34</b> of the welding power source.
Some embodiments of the advanced process wire feeder <b>20</b> include a valve assembly <b>72</b> for providing gas to the welding torch along a gas line <b>74</b>. The valve assembly <b>72</b> may be controlled by the process circuitry <b>56</b> and/or the wire feed assembly <b>60</b> as shown by the dashed control lines. For example, the valve assembly <b>72</b> may be configured to supply gas to the welding torch prior to and after a welding application. In some embodiments, the valve assembly <b>72</b> is configured to purge the gas line <b>74</b> upon receiving a purge command from the process operator interface <b>66</b> or the control operator interface <b>68</b>.
<figref idref="DRAWINGS">FIG. 3</figref> illustrates a front perspective view of an embodiment of the advanced process wire feeder <b>20</b> disposed in an enclosure <b>76</b> having the process operator interface <b>66</b> separate from the control operator interface <b>68</b>. In some embodiments, the advanced process wire feeder <b>20</b> is disposed in an enclosure <b>76</b> having an enclosure base <b>78</b> and enclosure cover <b>80</b> to shield the wire feed assembly <b>60</b> from the operating environment when the enclosure <b>76</b> is closed. The enclosure <b>76</b> may be substantially portable (e.g., suitcase feeder) and configured for manual operator transport to a welding application remote from the welding power source. The enclosure cover <b>80</b> is shown in dashed lines for clarity to illustrate an embodiment of the wire feed assembly <b>60</b> disposed within the enclosure.
The control operator interface <b>68</b> may be disposed outside the enclosure <b>76</b> as illustrated in <figref idref="DRAWINGS">FIG. 3</figref>. The control operator interface <b>68</b> may include one or more dials <b>82</b>, one or more displays <b>84</b>, and one or more buttons <b>86</b>. In some embodiments, the dials <b>82</b> may be configured to adjust voltage and/or amperage of the input power or welding output, wire speed, or arc length, or combinations thereof. One or more buttons <b>86</b> may enable the operator to select process types, operator preferences, or process parameters previously stored in memory, or combinations thereof. The control operator interface <b>68</b> may enable operator selection of process parameters stored in memory, such as previously selected amperage and wire speed for the selected controlled waveform welding process. The displays <b>84</b> may be configured to display adjusted process parameters and/or selected process type (e.g., RMD™, pulsed welding, FCAW, MIG). In some embodiments, the one or more displays <b>84</b>, lights, or other devices may be configured to provide an operator-perceptible notification to notify the operator if the polarities of the coupled power cables correspond to the respective input terminals <b>40</b>.
Embodiments of the advanced process wire feeder <b>20</b> include one or more spools <b>88</b> of welding wire <b>54</b> disposed within the enclosure <b>76</b> to supply the wire feed drive <b>90</b>. The welding wire <b>54</b> is pulled through the wire feed drive <b>90</b> and an output terminal <b>91</b> to the weld cable <b>62</b>. In some embodiments, the gas line <b>74</b> may be within the weld cable <b>62</b> as illustrated. A work cable <b>64</b> is coupled to the output terminal <b>91</b>.
<figref idref="DRAWINGS">FIG. 4</figref> illustrates a top view of an embodiment of the advanced process wire feeder <b>20</b> with the process operator interface <b>66</b> disposed within the enclosure <b>76</b>. The process operator interface <b>66</b> may include one or more buttons <b>92</b> and one or more indicators <b>94</b> to receive and display wire and material parameters. In some embodiments, the process operator interface <b>66</b> may be configured to receive gas parameters. The one or more buttons <b>92</b> of the process operator interface <b>66</b> may be configured to receive input such as wire material (e.g., steel, aluminum), wire type (e.g., solid, cored), wire diameter, and gas type. In some embodiments, the wire and/or gas parameters may be adjusted less frequently than the control parameters selected through the control operator interface <b>68</b>. For example, process operator interface <b>66</b> may be disposed within the enclosure that is normally closed during welding. As another example, the process operator interface <b>66</b> may be adjusted primarily when changing the spool <b>88</b> of welding wire <b>54</b>. Indicators <b>94</b> may include displays, lights, or other devices configured to provide an operator-perceptible notification indicating the selected wire and/or gas parameters. Two or more drive wheels <b>98</b> of the wire feed drive <b>90</b> are configured to direct the welding wire <b>54</b> through the output terminal <b>91</b> along the weld cable <b>62</b>.
<figref idref="DRAWINGS">FIG. 5</figref> illustrates a block diagram of an embodiment of the advanced process wire feeder <b>20</b> having process circuitry <b>56</b>, power conversion circuitry <b>58</b>, and a wire feed assembly <b>60</b>. Embodiments of the advanced process wire feeder <b>20</b> may be coupled to long power cables <b>24</b> having an inductance <b>100</b>. As may be appreciated, the power cables <b>24</b> may be conventional power cables <b>24</b>. As discussed above, the advanced process wire feeder <b>20</b> may be located remotely from the welding power source. For example, the advanced process wire feeder <b>20</b> may be disposed between approximately 30 to 200 feet, approximately 50 to 150 feet, or approximately 100 to 150 feet from the welding power source <b>12</b>. In some embodiments, the remotely located advanced process wire feeder may be in a different building, structure, or room than the welding power source <b>12</b>. The inductance <b>100</b> may vary during use as the power cables <b>24</b> are coiled, extended, and moved.
The power conversion circuitry <b>58</b> is configured to receive the input power from the power cables <b>24</b> and convert the input power to welding output. The power conversion circuitry may convert the input power to welding output without regard to the inductance <b>100</b> of the power cables <b>24</b>. Process control circuitry <b>102</b> controls the power conversion circuitry <b>58</b> based at least in part on parameters received from the process operator interface <b>66</b> and/or control operator interface <b>68</b>. The process control circuitry <b>102</b> controls a boost converter <b>104</b> and a buck converter <b>106</b> to convert the input power to welding output. An internal bus <b>108</b> may be disposed between the boost converter <b>104</b> and buck converter <b>106</b>. Only one boost converter <b>104</b> and buck converter <b>106</b> are discussed herein for clarity, however, other embodiments of the power conversion circuitry <b>58</b> may have one or more boost converters <b>104</b> and/or one or more buck converters <b>106</b>. The boost converter <b>104</b> and buck converter <b>106</b> are configured to convert the input power to welding output suitable for controlled waveform welding processes, such as for RMD™ and pulse welding processes.
The boost converter <b>104</b> receives DC voltage from the input terminals <b>40</b> and steps-up, or increases, the DC voltage of the bus power supplied to the buck converter <b>106</b>. As may be appreciated, the boost converter <b>104</b> converts the DC input power from the welding power source to a substantially pulsed stepped-up voltage DC bus power using a switch (e.g., FET) to open and close a boost circuit. The stepped-up voltage of the DC bus power is based at least upon the duty cycle of the switch. Varying the duty cycle of the switch affects the timing of when the stepped-up voltage DC bus power is supplied to the internal bus <b>108</b>. By controlling the switch of the boost converter <b>104</b>, the process control circuitry <b>102</b> may adjust the timing, voltage, and amperage of the DC bus power.
The buck converter <b>106</b> receives the stepped-up voltage DC bus power and steps-down, or decreases, the DC voltage to control the amperage of the welding output. As may be appreciated, the buck converter <b>106</b> converts the pulsed, stepped-up voltage DC bus power to a pulsed, stepped-down voltage DC welding output using a switch (e.g., FET) to open and close a buck circuit. As with the boost converter <b>104</b>, varying the duty cycle of the switch of the buck converter <b>106</b> affects the timing of when the stepped-down voltage DC welding output is supplied to the welding torch. In some embodiments, multiple buck converters <b>106</b> may be coupled to the internal bus <b>108</b> in parallel and controlled separately to affect the timing and amplitude of changes (e.g., pulses) to the welding output. By controlling the switch of the buck converter <b>106</b>, the process control circuitry <b>102</b> may adjust the timing, voltage, and amperage of the DC welding output. The control circuitry <b>102</b> is configured to control the switches of the boost and buck converters <b>104</b>, <b>106</b> to dynamically adjust the voltage and/or amperage of the DC welding output supplied to the torch based on the operator selected welding process (e.g., RMD™, pulsed welding, FCAW, MIG). In some embodiments, the process control circuitry <b>102</b> is configured to control the boost converter <b>104</b> and/or buck converter <b>106</b> based on sensed parameters of the input power, bus power, or welding output, or combinations thereof. For example, the control circuitry <b>102</b> may control the boost converter <b>104</b> based on sensed parameters of the welding output to control the voltage across the internal bus <b>108</b>.
In some embodiments, a power storage circuit (e.g., bus capacitor <b>110</b>) may be disposed on the internal bus <b>108</b>. The bus capacitor <b>110</b> may partially protect the boost converter <b>104</b> and/or buck converter <b>106</b> from a difference between the input power into the power conversion circuitry <b>58</b> and the welding output from the power conversion circuitry <b>58</b> at any time. As discussed above, the bus power converted by the boost converter <b>104</b> is directed to the internal bus <b>108</b>, then the buck converter <b>106</b>. The bus capacitor <b>110</b> may be configured to store the bus power until it is received by the buck converter <b>106</b>. Storing and discharging relatively large amounts of power in the bus capacitor <b>110</b> may heat the bus capacitor. The voltage difference between the bus power supplied by the boost converter <b>104</b> and the bus power removed by the buck converter <b>106</b> to convert to welding output may be measured as voltage ripple. Decreasing the magnitude of the voltage ripple may improve the weld quality and/or maintain the temperature of the bus capacitor <b>110</b>. The size and capacitance of the bus capacitor <b>110</b> may be based on the magnitude of the voltage ripple, which is affected at least in part on control of the boost converter <b>104</b> and the buck converter <b>106</b>. The bus capacitor <b>110</b> may partially attenuate and/or delay the voltage ripple.
In some embodiments, the process control circuitry <b>102</b> is configured to control the duty cycles of the boost converter <b>104</b> and the buck converter <b>106</b> to reduce the voltage ripple of the bus capacitor <b>110</b> based at least in part on sensed parameters of the input power and welding output. The current and voltage of the input power are sensed at the first and second connections <b>112</b>, <b>114</b> by sensing circuitry <b>116</b> through input sensors <b>118</b>. The sensing circuitry <b>116</b> senses the current and voltage at the internal bus <b>108</b> across the bus capacitor <b>110</b> through bus sensors <b>120</b>, and senses the current and voltage of the welding output through output sensors <b>122</b>. The process control circuitry <b>102</b> may drive the boost converter <b>104</b> and the buck converter <b>106</b> based at least in part on sensed parameters (e.g., voltage, current) of the welding output, the input power, or the bus power, or combinations thereof. For example, the sensing circuitry <b>116</b> may sense the voltage and current of the welding output with welding output sensors <b>122</b> and sense the voltage of the input power and bus power with input sensors <b>118</b> and bus sensors <b>120</b>. In some embodiments, the process control circuitry <b>102</b> is configured to determine the product (i.e., power) of the welding output current and voltage and loss of the power conversion circuitry <b>58</b>, to determine the sum of the loss and the product, to divide the sum by the input voltage to determine the desired bus current, and to drive the boost converter <b>104</b> to control the bus current. The boost converter <b>104</b> may control the bus current to the desired bus current to substantially match the bus power into the internal bus <b>108</b> with the welding output removed from the internal bus <b>108</b>. The inductance <b>100</b> of the power cables <b>24</b> delays the current flow into the internal bus <b>108</b> from the welding power source. Controlling the boost converter <b>104</b> based on the input sensors <b>118</b> and/or bus sensors <b>120</b> rather than the current and voltage of the input power at the welding power source reduces the voltage ripple on the bus capacitor <b>110</b>. Controlling the boost converter <b>104</b> based on the input sensors <b>118</b> and/or bus sensors <b>120</b> reduces or eliminates the effects of the inductance <b>100</b> on the welding output. In some embodiments, the process control circuitry <b>102</b> is configured to control the boost and buck converters <b>104</b>, <b>106</b> to reduce the voltage ripple on the internal <b>108</b> bus at least while the buck converter <b>106</b> is converting the bus power to a welding output suitable for a controlled waveform welding process (e.g., pulsed welding, short circuit welding).
The process control circuitry <b>102</b> may be configured to reduce the voltage ripple by adjusting the timing of the control signals for the duty cycle of switches within the boost and buck converters <b>104</b>, <b>106</b>. By adjusting the timing of the control signals, the process control circuitry <b>102</b> may be configured to generally align pulses (e.g., phases) of the welding output voltage and current with the pulses of the input current of the input power. The process control circuitry <b>102</b> may adjust the relative timing (e.g., phase shift, advance in time, delay in time) signal pulses from the boost converter <b>104</b> and/or buck converter <b>106</b> to reduce the voltage ripple. Reducing the voltage ripple on the internal bus <b>108</b> may enable the bus capacitor <b>110</b> to be smaller, lighter, cooler, more efficient, cheaper, or combinations thereof. The process control circuitry <b>102</b> may be configured to tune the voltage ripple to a minimum value for any inductance <b>100</b> of the power cables <b>24</b>. In this way, the inductance <b>100</b> may change during operation of the welding system or between welding operations without affecting the voltage ripple on the internal bus <b>108</b> and/or welding output from the buck converter <b>106</b>.
The input power is received from the welding power source along the power cable <b>24</b> coupled to the input terminals <b>40</b>. In some embodiments, the input terminals <b>40</b> have the first input connection <b>112</b> and the second input connection <b>114</b> with respective defined polarities. As discussed above, the first and second terminals <b>26</b>, <b>28</b> have a positive and negative polarity, thus the input power is polarized. In some embodiments, sensing circuitry <b>116</b> is configured to detect the polarity of the polarized input power supplied to the first and second input connections <b>112</b>, <b>114</b> using the input sensors <b>118</b>. The sensing circuitry <b>116</b> may be configured to detect a mismatch between the polarities of the first and second terminals <b>26</b>, <b>28</b> and defined polarities of the first and second input connections <b>112</b>, <b>114</b>. The process control circuitry <b>102</b> coupled to the sensing circuitry <b>116</b> may be configured to provide the polarized input power to the power conversion circuitry <b>58</b> only if the detected input power polarity corresponds to the defined polarities of the first and second input connections <b>112</b>, <b>114</b>. The advanced process wire feeder <b>20</b> may be configured to supply a polarized welding output for a particular welding application. Switching the polarity of the first and second terminals <b>26</b>, <b>28</b> so that the terminals <b>26</b>, <b>28</b> do not correspond to the first and second input connections <b>112</b>, <b>114</b> may switch the polarity of the power cable <b>62</b> and work cable <b>64</b> from DCEN to DCEP, or from DCEP to DCEN.
In some embodiments, the advanced process wire feeder <b>20</b> is configured to notify the operator of the polarity and/or switch the polarity of the input power automatically. For example, the process operator interface <b>66</b> and/or control operator interface <b>68</b> may be configured to provide an operator-perceptible notification if the polarity of the polarized input power does not correspond to the defined polarities of the first and second input connections <b>112</b>, <b>114</b>. The communications circuitry may be configured to send and receive command and/or feedback signals over the power cable to the welding power source. The communications circuitry sends a signal indicative of a mismatch between the polarities of the input connections so that the welding power source may provide an operator-perceptible notification of the polarity and/or reverse the polarity of the input power. In some embodiments, polarity reversing circuitry <b>36</b> (<figref idref="DRAWINGS">FIG. 1</figref>) of the welding power source reverses the polarity of the polarized input power based upon the signal such that the polarity of the polarized input power corresponds to the defined polarities of the first and second input connections <b>112</b>, <b>114</b>.
The sensing circuitry <b>116</b> is also configured to measure the current and/or voltage of the internal bus <b>108</b> with bus sensors <b>120</b> and to measure the current and/or voltage of the welding output with welding output sensors <b>122</b>. The process control circuitry <b>102</b> monitors the input sensors <b>118</b>, bus sensors <b>120</b>, and welding output sensors <b>122</b> through the sensing circuitry <b>116</b>. Upon detection of a change of the polarized input power and/or the welding output to a value outside of a threshold range, the process control circuitry <b>102</b> may open relay circuitry <b>124</b> to interrupt provision of the polarized input power to the operational components of the welding wire feeder <b>20</b>. The operational components may include, but are not limited to, the power conversion circuitry <b>58</b>, the welding wire feed drive <b>90</b>, or the wire feed control circuitry, or any combination thereof. The threshold range has a maximum threshold value (e.g., approximately 80V, 100V, 120V, or more) and a minimum threshold value (e.g., approximately 20V, 25V, or 30V). Operating the power conversion circuitry when the polarized input power and/or the welding output are within the threshold range may increase the stability or consistency of the conversion. For example, a short circuit downstream of the relay circuitry <b>124</b> may cause a voltage decline across the internal bus <b>108</b> and/or voltage decline of the welding output. Opening the relay circuitry <b>124</b> may protect at least the relay circuitry <b>124</b> from excess input power due to the short circuit downstream. The relay circuitry <b>124</b> may include circuit elements such as a latching relay, non-latching relay, solid state switches, and so forth. The relay circuitry <b>124</b> is configured to close to provide input power and to open to interrupt input power to the power conversion circuitry <b>58</b>. In some embodiments, power storage circuitry may provide power to open the relay circuitry <b>124</b> and interrupt input power. The power storage circuitry may include an auxiliary power source <b>126</b> and/or the bus capacitor <b>110</b> on the internal bus <b>108</b>.
Presently contemplated embodiments of the relay circuitry <b>124</b> include a power relay <b>128</b> and bypass circuitry <b>130</b> coupled in parallel at first and second relay junctions <b>132</b>, <b>134</b>. The power relay <b>128</b> may be a latching relay or a non-latching relay configured to carry high amperage DC along a first current path <b>129</b> when closed. A latching relay may be smaller and lighter than a non-latching relay with the same current capacity. In some embodiments, the power relay <b>128</b> may be the Relay Type 753 manufactured by Gruner of Wehingen, Germany. The bypass circuitry <b>130</b> may include, but is not limited to, a drive circuit, a voltage clamping device (e.g., metal oxide resistor), and one or more switches responsive to drive signals from the drive circuit. The one or more switches are configured to carry current along a second current path <b>131</b> when closed. The voltage clamping device may be configured to clamp the voltage across the first and second relay junctions <b>132</b>, <b>134</b> in response to a voltage spike (e.g., rapid increase or decrease) across the relay circuitry <b>124</b>. The voltage spike may cause a large current to otherwise flow along the first and/or second current path <b>129</b>, <b>131</b>. The voltage clamping device may be configured to dissipate some of the energy stored in the inductance <b>100</b> of the power cables <b>24</b>. In some embodiments, the bypass circuitry <b>130</b> may include at least a pair of switches to protect the drive circuit if the polarities of the first and second terminals <b>26</b>, <b>28</b> do not correspond to the respective defined polarities of the coupled first and second terminals <b>112</b>, <b>114</b>. The bypass circuitry <b>130</b> may also include multiple solid state switches (e.g., transistors) coupled in parallel to the power relay <b>128</b> to provide a desired current carrying capacity, such as the high amperage DC input power. The drive circuit may be the process control circuitry <b>102</b> or a separate circuit controlled by the process control circuitry <b>102</b>.
The process control circuitry <b>102</b> is configured to apply signals to the power relay <b>128</b> to open and close the power relay <b>128</b>, and to apply signals to the bypass circuitry <b>130</b> to open and close the bypass circuitry <b>130</b> in coordination with opening and closing the power relay <b>128</b>. In some embodiments, the signals to open and close the power relay <b>128</b> and to open and close the bypass circuitry <b>130</b> are applied substantially simultaneously. The bypass circuitry <b>130</b> may be configured to carry a fraction of the input power along the second current path <b>131</b> to the power conversion circuitry <b>58</b> for a short time to reduce the remainder of the input power carried along the first current path <b>129</b> through the power relay <b>128</b> for that short time. When closed, the switches of the bypass circuitry <b>130</b> are configured to reduce the current across the power relay <b>128</b> to enable the power relay <b>128</b> to open or close without arcing and/or using magnetic blowouts. After the process control circuitry <b>102</b> signals the power relay <b>128</b> to open or close, the process control circuitry <b>102</b> signals the switches of the bypass circuitry <b>130</b> to open to interrupt the fraction of the input power along the second current path <b>131</b>. The switches of the bypass circuitry <b>130</b> may be configured to carry the input power along the second current path <b>131</b> for the short time while the power relay <b>128</b> is opened or closed.
The power relay <b>128</b> is closed to provide input power to the power conversion circuitry <b>58</b> during welding. In some embodiments, the process control circuitry <b>102</b> coupled to the sensing circuitry <b>116</b> is configured to monitor the voltage of the input power and the voltage across the internal bus <b>108</b>. The control circuitry <b>102</b> is configured to open the power relay <b>128</b> based at least in part on a decline of either the input voltage or the voltage across the internal bus <b>108</b>, which may indicate a short circuit downstream of the relay circuitry <b>124</b>. The process control circuitry <b>102</b> may actuate the power relay <b>130</b> with power stored in a power storage circuit, such as the auxiliary power supply <b>126</b> or the bus capacitor <b>110</b>. For example, the process control circuitry <b>102</b> may discharge the power storage circuit to power a coil to open or close the power relay <b>128</b>
In some embodiments, a power storage circuit may be charged before the welding power source provides input power suitable for conversion to welding output. The power storage circuit (e.g., bus capacitor <b>110</b>) on the internal bus <b>108</b>, may be charged by the received input current at an initial level. In some embodiments, the process control circuitry <b>102</b> transmits a precharge signal to the welding power source to reduce the input current of the input power to the initial level. The sensing circuitry <b>116</b> may sense the charge of the power storage circuit with the bus sensors <b>120</b>. In some embodiments, the process control circuitry <b>102</b> may initiate a signal to the welding power source to increase the input current to a greater level based upon a comparison between the input power voltage and the voltage across the internal bus <b>108</b>. In some embodiments, the process control signal receives the input current at the greater level after the first current path <b>129</b> is closed and the second current path <b>131</b> is opened. Receiving input current at an initial level first, and then receiving input current at a greater level enables a staged initialization of the advanced process wire feeder <b>20</b> to reduce the inrush current and input power drawn by the process control circuitry <b>102</b> and/or the power conversion circuitry <b>58</b>. For example, the process control circuitry <b>102</b> may initiate the signal to the welding power source when the bus voltage is approximately 50%, 75%, or 100% of the input power voltage. In some embodiments, the signal is sent to the welding power source via the communications circuitry <b>70</b> and power cable <b>24</b>.
The bus capacitor <b>110</b> between the boost converter <b>104</b> and the buck converter <b>106</b> may perform several functions within the advanced process wire feeder <b>20</b>. The bus capacitor <b>110</b> may store power to open or close the relay circuitry <b>124</b> to interrupt the input power flow to the operational components (e.g., power conversion circuitry <b>58</b>, wire feed drive <b>90</b>, wire feed control circuitry <b>136</b>). The process control circuitry <b>102</b> may open or close the relay circuitry <b>124</b> based on the voltage of the bus capacitor <b>110</b> and/or the input connections <b>112</b>, <b>114</b>. The process control circuitry <b>102</b> may also send the signal to the welding power source based at least in part on the sensed voltage of the bus capacitor <b>110</b> and/or input connections <b>112</b>, <b>114</b>.
In some embodiments, the bypass circuitry <b>130</b> is configured to prevent the power relay <b>128</b> from closing if there is a short circuit downstream of the relay circuitry <b>124</b>. The process control circuitry <b>102</b> may test the advanced process feeder <b>20</b> by closing the second current path <b>131</b> to determine if the voltage of the internal bus <b>108</b> may increase. In the case of a short circuit downstream of the relay circuitry <b>124</b>, the voltage of the internal bus <b>108</b> would not increase. When the process control circuitry <b>102</b> determines that the voltage of the internal bus <b>108</b> may increase, the process control circuitry <b>102</b> may close the power relay <b>128</b> to enable input power to flow to the power conversion circuitry <b>58</b>. Testing the advanced process wire feeder <b>20</b> for a short circuit downstream of the relay circuitry <b>124</b> enables the power relay <b>128</b> to remain open in the event of a short circuit.
The wire feed assembly <b>60</b> is controlled by wire feed control circuitry <b>136</b> coupled to the wire feed drive <b>90</b>. The wire feed control circuitry <b>136</b> may be coupled to the process operator interface <b>66</b>, the control operator interface <b>68</b>, and the process control circuitry <b>102</b>. The wire feed control circuitry <b>136</b> controls the wire feed drive <b>90</b> to supply the welding wire <b>54</b> to the weld cable <b>62</b> based at least in part on parameters received via the process operator interface <b>66</b> and control operator interface <b>68</b>. As discussed above, the process operator interface <b>66</b> may be configured to receive inputs for gas parameters. The valve assembly <b>72</b> coupled to the gas line <b>74</b> is configured to be controlled by the process control circuitry <b>102</b> and/or the wire feed control circuitry <b>136</b>.
<figref idref="DRAWINGS">FIG. 6</figref> illustrates a schematic diagram of an embodiment of the bypass circuitry <b>130</b> of <figref idref="DRAWINGS">FIG. 5</figref> along line <b>6</b>-<b>6</b>. As described above, the bypass circuitry <b>130</b> is coupled in parallel with the power relay <b>128</b> at the first and second relay junctions <b>132</b>, <b>134</b>. The bypass circuitry <b>130</b> includes one or more switches <b>138</b>, such as metal-oxide-semiconductor field-effect transistors (MOSFETs), coupled in parallel to the power relay <b>128</b>. In some embodiments, the solid state switches may be arranged in an anti-series parallel configuration. The power relay <b>128</b> and the bypass circuitry <b>130</b> are controlled by the process control circuitry to open and close at substantially the same time to reduce arcing across the power relay <b>128</b>. Closing the power relay <b>128</b> enables current to flow along the first current path <b>129</b> and closing the switches <b>138</b> enables current to flow along the second current path <b>131</b>. The second current path <b>131</b> may include a number of branches <b>140</b>, <b>142</b>, <b>144</b>, and <b>146</b> between parallel switches. Changing the number of branches affects the current carrying capacity along the second current path <b>131</b>, thus affecting the current along the first path <b>129</b> when the power relay <b>128</b> is actuated. Reducing the current along the first path <b>129</b> when actuating the power relay <b>128</b> reduces arcing between contacts of the power relay. The process control circuitry is configured to control the one or more switches <b>138</b> through a gate <b>148</b> or other control switch to open and close the one or more switches <b>138</b> simultaneously or sequentially. The one or more switches <b>138</b> are configured to be open unless controlled by the process control circuitry to close.
Upon receiving control signals from the process control circuitry, the one or more switches <b>138</b> are configured to close, opening the second current path <b>131</b>. While the one or more switches <b>138</b> are closed, the process control circuitry controls the power relay <b>128</b> to actuate open or closed with a reduced current along the first current path <b>129</b> due to the current along the second current path <b>131</b>. After the power relay <b>128</b> is actuated open or closed, the process control circuitry opens the one or more switches <b>138</b> to open the second current path <b>131</b>. The control signals from controlling the one or more switches <b>138</b> and the power relay <b>128</b> may be pulses that open and close the first and second current paths <b>129</b>, <b>131</b> substantially simultaneously. That is, the power relay <b>128</b> may open and close the first and second current paths <b>129</b>, <b>131</b> in approximately 5 to 50 milliseconds, 10 to 40 milliseconds, or approximately 20 to 30 milliseconds.
The bypass circuitry <b>130</b> includes a voltage clamping device <b>150</b> (e.g., (e.g., metal oxide resistor, varistor) to protect the one or more switches <b>138</b> and power relay <b>128</b> from over-voltages. Upon opening the power relay <b>128</b>, the voltage between the first and second relay junctions <b>132</b>, <b>134</b> may increase as the bus capacitor, power cables, and/or auxiliary power source, or other circuitry releases stored charge. The voltage clamping device <b>150</b> is configured to have greater electrical resistance at higher voltages than at lower voltages. The voltage clamping device <b>150</b> carries more current along the third current path <b>152</b> as the voltage between the first and second relay junctions <b>132</b>, <b>134</b> increases to maintain the current along the first and second current paths <b>129</b>, <b>131</b> below threshold levels.
The advanced process wire feeder of <figref idref="DRAWINGS">FIG. 5</figref> may be utilized according to multiple methods as illustrated in <figref idref="DRAWINGS">FIGS. 7-10</figref>. Some embodiments of the advanced process wire feeder may be utilized with all of the illustrated embodiments of <figref idref="DRAWINGS">FIGS. 7-10</figref>. Other embodiments of the advanced process wire feeder may be utilized with only some of the illustrated embodiments of <figref idref="DRAWINGS">FIGS. 7-10</figref>. <figref idref="DRAWINGS">FIG. 7</figref> illustrates a method <b>154</b> of converting input power to controlled waveform welding output within an advanced process wire feeder. The first step <b>156</b> of the method is to receive input power from the welding power source. In some embodiments, the input power may be a polarized DC input power of approximately 80V. The input power may not be suitable for a controlled waveform welding process if it was directly supplied to the welding torch. In step <b>158</b>, an operator may open the enclosure of the advanced process wire feeder. The operator may open the enclosure to install or change the welding wire spool or to adjust parameters relating to the welding wire and gas supply. At step <b>160</b>, the process operator interface within the enclosure receives the wire and/or gas parameter before the enclosure is closed at step <b>162</b>. At step <b>164</b>, the process control circuitry determines the process parameters. The process parameters include a controlled waveform output, the amperage, the feed rate of the welding wire, and so forth. The process parameters may be determined based on the parameters received through the process operator interface. In some embodiments, the control circuitry automatically determines the process parameters for a controlled waveform welding output based on code and/or instructions stored in memory without direct selection of the process type by the operator. The advanced process wire feeder may communicate with the welding power source at step <b>166</b> to adjust the input power based at least in part on the received process and/or wire parameters. In some embodiments, step <b>166</b> may occur at any time during operation of the advanced process wire feeder. At block <b>168</b>, the advanced process wire feeder converts the input power to welding output. The welding output may be a controlled waveform welding output suitable for a short circuit or pulsed welding process. The welding output converted by the power conversion circuitry within the advanced process wire feeder is not attenuated by inductance of the power cable coupled to the welding power source. The advanced process wire feeder receives shielding gas at step <b>170</b>. The shielding gas may be supplied through the welding power source or a separate gas supply. At step <b>172</b>, the advanced process wire feeder provides the wire and gas to the welding torch based at least in part on the input received at steps <b>160</b> and <b>164</b>. At step <b>174</b>, the welding output is provided to the welding torch, based at least in part on the input received at step <b>164</b>. The welding output may be suitable for a controlled waveform welding process because of the relatively short distance and low inductance between the power conversion circuitry and the welding torch.
<figref idref="DRAWINGS">FIG. 8</figref> illustrates a method <b>176</b> of sensing the polarity of the input power received by the advanced process wire feeder. At step <b>178</b>, the advanced process wire feeder receives polarized input power from the welding power source. The polarized input power is supplied along first and second terminals of the power cable. The input power is received at two input connections, each with a defined polarity. At block <b>180</b>, sensing circuitry detects the polarity and voltage of the polarized input power with input sensors at the first and second input connections. In some embodiments, at block <b>182</b>, the received input power may charge power storage circuitry, such as an auxiliary power source and/or a bus capacitor.
Upon detecting the polarity of the input power at step <b>180</b>, the sensing circuitry verifies at node <b>184</b> whether the first and second terminals correspond to the defined polarities of the input connections. If there is a mismatch between the polarities, process control circuitry within the advanced process wire feeder may notify the operator with an operator-perceptible notification of the mismatched polarity through the process operator interface, the control operator interface, and/or the welding power source. Alternatively, at block <b>188</b> the process control circuitry may communicate with the welding power source to direct the welding power source to change the polarity of the input power as shown at block <b>190</b>. If the polarity of the input power matches the polarity of the defined polarity connections, then the process control circuitry determines at node <b>192</b> whether the input power and input voltage is substantially stable. If the input voltage is stable, the input power is supplied to the power conversion circuitry. The process control circuitry may periodically sense and determine whether the input voltage is stable at node <b>192</b> during the welding process. If the input voltage is not stable, the process control circuitry may interrupt the polarized input power supply to the power conversion circuitry. The process control circuitry may interrupt the polarized input power by opening a power relay upstream of the power conversion circuitry and/or communicating with the welding power source to cease supplying the advanced process wire feeder with input power. If the input power is interrupted, the method <b>176</b> may be repeated from step <b>178</b> when polarized input power is received.
If the input voltage is stable, the input power is supplied to the power conversion circuitry to convert the polarized input power to welding output at block <b>196</b>. The welding output may be a controlled waveform welding output suitable for a short circuit or pulsed welding process. Additionally, the welding output may be suitable for a FCAW process or GMAW welding process. The welding output converted by the power conversion circuitry within the advanced process wire feeder <b>20</b> is not attenuated by inductance of the power cable coupled to the welding power source. The advanced process wire feeder receives shielding gas at step <b>170</b>. The shielding gas may be supplied through the welding power source or a separate gas supply. At step <b>172</b>, the advanced process wire feeder provides the wire and gas to the welding torch. At step <b>174</b>, the welding output is provided to the welding torch. The welding output provided may be suitable for a controlled waveform welding process because of the relatively short distance and low inductance between the power conversion circuitry and the welding torch.
<figref idref="DRAWINGS">FIG. 9A</figref> illustrates a first part of a method <b>198</b> of precharging circuit elements of the advanced process wire feeder and using bypass circuitry in parallel with the power relay. The advanced process wire feeder sends a precharge signal to the welding power source at step <b>199</b> when the advanced process wire feeder is electrically coupled to the welding power source. The precharge signal directs the welding power source to limit the current of the precharge input power to an initial level. At step <b>200</b>, the advanced process wire feeder receives the input power at the initial level. At step <b>201</b>, the process control circuitry sends a control signal to the bypass circuit to close the second current path to transmit the input power at the initial level to the power storage circuitry (e.g., bus capacitor on the internal bus). The input power at the initial level charges power storage circuitry (e.g., bus capacitor) at step <b>202</b>. The sensing circuitry detects the voltages of the input power and bus power at step <b>204</b>. The voltage of the bus power is a measure of the power stored in the bus capacitor. At node <b>206</b>, the process control circuitry compares the voltages of the input power and the bus power. In some embodiments at node <b>206</b>, the process control circuitry tests the relay circuitry as described above with <figref idref="DRAWINGS">FIG. 5</figref> to determine the presence of a short circuit downstream of the relay circuitry. If a short circuit is present downstream (e.g., the voltage is below a threshold), the process control circuitry may not close the power relay so that the input power does not pass through the short circuit. The process control circuitry may open the bypass circuit at block <b>207</b> in case of a short downstream. After the bypass circuit opens, the voltage clamping device clamps the voltage at block <b>209</b> to at least partially protect the relay circuitry. The process control circuitry may send a signal at block <b>211</b> to the welding power source, the process operator interface, and/or the control operator interface. In some embodiments, the signal may control the welding power source to halt production of the input power. In other embodiments, the signal controls the operator interface to indicate a fault (e.g., short circuit) at block <b>213</b> to the operator. If the voltage of the bus power is above a threshold (e.g., the power storage circuitry is charged) and no short circuit is present, the process control circuitry sends a control signal to the power relay to close the first current path at step <b>208</b>.
After the power relay is closed, at step <b>210</b> the process control circuitry sends a control signal to the bypass circuit to open the second current path. In some embodiments, the process control circuitry sends a signal to the welding power source at block <b>212</b>. The signal directs the welding power source to increase the current of the input power to a greater level. In other embodiments, the welding power source is configured to increase the current to the greater level after a defined period of time after step <b>210</b>. In some embodiments, the process control circuitry of the advanced process wire feeder may perform the steps <b>208</b> and <b>210</b> substantially simultaneously, or within less than approximately 50 milliseconds, less than approximately 30 milliseconds, or less than approximately 15 milliseconds. The advanced process wire feeder receives the input power at the greater level at block <b>214</b>. The input power at the greater level is suitable for conversion to welding output at block <b>216</b> for a desired welding process.
The power conversion circuitry of the advanced process wire feeder converts the input power at the greater level to welding output at step <b>216</b>. The welding output may be a controlled waveform welding output suitable for a short circuit or pulsed welding process. Additionally, the welding output may be suitable for a FCAW process or GMAW welding process. The welding output converted by the power conversion circuitry within the advanced process wire feeder is not attenuated by inductance of the power cable coupled to the welding power source. <figref idref="DRAWINGS">FIG. 9B</figref> illustrates a second part of the method <b>198</b> that may be configured during and after block <b>216</b>. During a welding process, at node <b>218</b>, sensing circuitry monitors voltages of input power and bus power to control the relay circuitry. In some embodiments, the sensing circuitry may also detect the polarity of the input power as described above with method <b>176</b> in <figref idref="DRAWINGS">FIG. 8</figref> to notify the operator of a polarity mismatch or reverse the polarity at the welding power source.
If the sensing circuitry detects a declining voltage across the internal bus and/or a declining voltage of the input power, the process control circuitry actuates the relay circuitry in steps <b>220</b>, <b>224</b>, and <b>226</b> to interrupt the input power to the power conversion circuitry. The process control circuitry sends a control signal to the bypass circuit at step <b>220</b> to close the second current path. At the same time or shortly after step <b>220</b>, the process control circuitry sends a control signal to the power relay at step <b>224</b> to open the first current path. The process control circuitry may discharge at least some of the power storage circuit to drive the power relay open. For example, the power storage circuit may store power to drive a magnetic coil to open power relay upon receipt of a control signal from the process control circuitry. After the power relay is open, at step <b>226</b> the process control circuitry sends a control signal to the bypass circuit to open the second current path. In some embodiments, the process control circuitry of the advanced process wire feeder may perform the steps <b>220</b>, <b>224</b>, and <b>226</b> substantially simultaneously, or within less than approximately 50 milliseconds, less than approximately 30 milliseconds, or less than approximately 15 milliseconds. After the first and second current paths are open, the voltage across the relay circuitry may increase due to power stored within the power cables and/or power storage circuit. A voltage clamping device of the relay circuitry clamps the voltage at block <b>228</b> to reduce the effects of the stored energy on the power relay or bypass circuit. Throughout the method <b>198</b>, such as if the sensing circuitry detects stable voltages of the input power and bus power, the advanced process wire feeder may communicate with the welding power source at step <b>230</b>. The advanced process wire feeder may direct the welding power source to adjust the input power (e.g., cease supplying the input power).
The advanced process wire feeder receives shielding gas at step <b>170</b>. The shielding gas may be supplied through the welding power source or a separate gas supply. At step <b>172</b>, the advanced process wire feeder provides the wire and gas to the welding torch. At step <b>174</b>, the welding output is provided to the welding torch. The welding output provided may be suitable for a controlled waveform welding process because of the relatively short distance and low inductance between the power conversion circuitry and the welding torch.
<figref idref="DRAWINGS">FIG. 10</figref> illustrates a method <b>232</b> of controlling the current of the input power to reduce voltage ripple on the internal bus. The first step <b>234</b> of the method <b>232</b> is to receive input power from the welding power source. In some embodiments, the input power may be a polarized DC input power of approximately 80V. Throughout the method <b>232</b>, the advanced process wire feeder may communicate with the welding power source as shown at step <b>236</b>. The boost converter of the power conversion circuitry receives the input power and converts the input power to bus power at step <b>238</b>. The bus power is transmitted from the boost converter to the buck converter along the internal bus. Sensing circuitry detects the current and voltage of the bus power at step <b>240</b>. At step <b>242</b>, the buck converter converts the bus power from the internal bus to welding output. The welding output may be a controlled waveform welding output suitable for a short circuit or pulsed welding process. Additionally, the welding output may be suitable for a FCAW process or GMAW welding process. The sensing circuitry also detects the current and voltage of the welding output at step <b>244</b>.
The process control circuitry receives the detected currents and processes the detected measurements to adjust the power conversion circuitry. In some embodiments, the process control circuitry is configured to determine the desired current of bus power to reduce the voltage ripple across the internal bus. The process control circuitry may determine the desired current of bus power by determining the product of the welding output current and voltage, determining the sum of the product and a conversion loss, and dividing the sum by the bus voltage. The process control circuitry may adjust the command signals to the boost and buck converters at step <b>248</b> based on the detected current and voltage measurements from steps <b>240</b> and <b>244</b>. In some embodiments, the process control circuitry adjusts the command signals to the power conversion circuitry to substantially match in time the bus power entering the internal bus with the bus power entering the buck converter. This reduces the voltage ripple across the internal bus. The process control circuitry is configured to adjust the current of the bus power based at least in part on the welding output. In some embodiments, the process control circuitry is configured to adjust the duty cycle of switches within the boost converter to advance or delay in time (e.g., phase shift) the conversion of input power to bus power. The process control circuitry is also configured to adjust the duty cycle of switches within the buck converter to advance or delay in time (e.g., phase shift) the conversion of bus power to welding output. In some embodiments, the process control circuitry is configured to dynamically adjust the boost converter and buck converter based on feedback to tune the voltage ripple to a minimum value. The process control circuitry is configured to tune the voltage ripple to the minimum value for any inductance of the power cables.
The advanced process wire feeder receives shielding gas at step <b>170</b>. The shielding gas may be supplied through the welding power source or a separate gas supply. At step <b>172</b>, the advanced process wire feeder provides the wire and gas to the welding torch. At step <b>174</b>, the welding output is provided to the welding torch. The welding output provided may be suitable for a controlled waveform welding process because of the relatively short distance and low inductance between the power conversion circuitry and the welding torch.
<figref idref="DRAWINGS">FIG. 11</figref> is a chart <b>249</b> illustrating an embodiment of the bus voltage, input current, and welding output parameters versus time of the advanced process wire feeder without adjusting the power conversion circuitry. The chart <b>249</b> illustrates a series of input current pulses on the internal bus supplied by the boost converter, and the welding output drawn by the buck converter from the internal bus suitable for a controlled waveform welding process. The signal <b>250</b> is the voltage ripple as measured on the internal bus. The signal <b>252</b> is the output current of the welding output drawn by the buck converter, and the signal <b>254</b> is the output voltage of the welding output drawn by the buck converter. Signal <b>256</b> is the current of the converted bus power supplied by the boost converter from the input power. Each of the signals illustrated has a regular period, however, the output timing (e.g., phase) of the output current and voltages <b>252</b>, <b>254</b> precedes the input timing (e.g., phase) of the bus current <b>256</b>. That is, the timing of a peak <b>260</b> of the bus current <b>256</b> is offset (e.g., delayed) from the timing of peaks <b>258</b> of the welding output current <b>252</b> and welding output voltage <b>254</b>. The relative time difference between the output peak <b>258</b> and the input peak <b>260</b> of the chart <b>249</b> causes the voltage ripple to have a large peak-to-peak amplitude <b>262</b>.
<figref idref="DRAWINGS">FIG. 12</figref> is a chart <b>264</b> illustrating an embodiment of the bus voltage, input current, and welding output parameters versus time of the advanced process wire feeder for which the power conversion circuitry is adjusted to reduce the voltage ripple. In this embodiment, the peak-to-peak amplitude <b>262</b> of the voltage ripple <b>250</b> is substantially less than in chart <b>249</b> of <figref idref="DRAWINGS">FIG. 11</figref>. The process control circuitry controls the duty cycles of switches within the boost converter and/or the buck converter to reduce the voltage ripple <b>250</b>. For example, the process control circuitry adjusts the timing of the output peak <b>258</b> of the output current and voltage, adjusts the timing of the input peak <b>260</b> of the bus current, or combinations thereof. <figref idref="DRAWINGS">FIG. 12</figref> illustrate an embodiment in which the process control circuitry delays the timing of the output peak <b>258</b> to more closely coincide with the timing of the input peak <b>260</b>, thereby reducing the peak-to-peak amplitude <b>262</b> of the voltage ripple <b>250</b>. In some embodiments, the voltage ripple <b>250</b> is reduced when the input current <b>256</b> and input voltage signals are aligned in time with the output current <b>252</b> and the output voltage <b>254</b>. The product of the input current <b>256</b> and the input voltage signals may be approximately equal to a sum of a conversion loss (e.g., from the boost converter and the buck converter) and the product of the output current <b>252</b> and the output voltage <b>254</b> signals. In some embodiments, the process control circuitry controls the conversion by the boost and buck converters to refine the shape of the pulsed waveforms to further reduce the voltage ripple. For example, the bus current <b>256</b> of the embodiment of chart <b>264</b> increases and decreases more rapidly than the embodiment of chart <b>249</b>. Additionally, the process control circuitry may control the bus current <b>256</b> supplied by the boost converter to closely match the current of the welding output <b>252</b> drawn by the buck converter as illustrated in chart <b>264</b>.
<figref idref="DRAWINGS">FIG. 13</figref> illustrates an exemplary current management system as may be used in either a pendant coupled to a welding power source or in a remote wire feeder, of the types described above. The current management system, designated generally by reference numeral <b>268</b> is designed to be coupled to a welding power source <b>12</b> via a power cable <b>24</b>. Because the welding power source <b>12</b> may often be live (i.e., powered and providing output power to the cables <b>24</b>), the current management system <b>268</b> may serve multiple functions, such as to limit inrush current to energy storage devices within the remote component, and/or to delay application of current to the energy storage devices to avoid arcing at the terminal connections when the component is coupled to the live welding power source. In the illustrated embodiment, the current management system <b>268</b> comprises at least one energy storage device <b>270</b> coupled to a local power supply <b>272</b> within the component. The local power supply may be used to provide power for various accessories <b>274</b>, such as user interfaces, displays, and so forth. The energy storage device <b>270</b> may comprise one or more types of devices, such as capacitors, batteries, combinations of these, or any other suitable energy storage devices. A charge/discharge control circuit <b>276</b> is also provided for regulating application of current to the energy storage device <b>270</b> and for regulating the flow of power from the energy storage device. These devices may be coupled in a bussed circuit arrangement as illustrated, with welding power being provided to a welding torch in parallel with this circuitry. Moreover, current and voltage sensors may be incorporated into the circuitry for regulating operation of certain of the components, particularly during initial connection of the pendant or wire feeder to a power source and also during operation.
As described more fully below with reference to <figref idref="DRAWINGS">FIGS. 14 and 15</figref>, the current management system <b>268</b> serves to limit current into the energy storage device by operation of the charge/discharge control circuit. In particular, during use, the circuitry may ensure that the welding power output does not “starve” the local power supply <b>272</b>, such as during arc starting (e.g., lift-arc starting in TIG operations). Moreover, the current draw can be made low enough via the circuitry to prevent arcing when the pendant or wire feeder is connected to a live welding power source. So further, energy from the energy storage device may be used to maintain power to the accessory <b>274</b> during loss of open circuit voltage (i.e., “ride-through”).
<figref idref="DRAWINGS">FIG. 14</figref> illustrates an exemplary charge/discharge control circuit <b>276</b> such as may be suitable for a limiting inrush current to a remote component, such as a welding pendant. The energy storage device <b>270</b> is here illustrated as a series of capacitors. A charge path <b>278</b> is defined through a resistor <b>280</b> and a switch <b>282</b>. In the illustrated embodiment, the resistor <b>280</b> is a relatively low resistance, such as 100 Ohms, although any suitable resistance could be used, and the switch <b>282</b> comprises a MOSFET, although any suitable switch may be used. The resistor <b>280</b> will initially limit the flow of current to the capacitors upon connection of the component to a live power source. Current to the capacitors is limited by resistor <b>280</b> and by switch <b>282</b> under control of a Zener diode <b>286</b> (or another device, such as a circuit that mimics aspects of a Zener diode and an error amplifier in combination). This current can be made low enough by selection of the individual electrical components to prevent arcing when the pendant is connected to a welding power source open current voltage. Diodes <b>284</b> are provided for protection purposes. A current-limiting effect is provided by diode <b>286</b> (or other device as mentioned above) and a resistor <b>288</b> that act together to limit current by modulating the conductive state of switch <b>282</b>. In a current circuit design, for example, the current flow is not allowed to exceed approximately 0.5 Amps. That is, switch <b>282</b> allows for charging of the capacitors, and this switch is maintained in a conductive state, but is throttled back to a limited current by interaction of components <b>286</b> and <b>288</b>.
Moreover, an additional diode <b>290</b> (which again may be a circuit that mimics aspects of a diode in combination with an error amplifier) and additional resistors <b>292</b> are provided that act together to limit voltage. That is, these components as coupled in the illustrated diagram act to reduce the bias of switch <b>282</b> to effectively limit the voltage of the device. Consequently, relatively low voltage capacitors may be utilized.
In operation, the circuitry effectively limits the inrush of current when the component is initially coupled to a live power source, in this case any spark being limited to approximately 0.5 Amps. The storage devices, in this case a series of capacitors, are then allowed to charge. Thereafter, “ride-through” capabilities are provided by the capacitors which feed the local power supply <b>272</b> during a loss of welding power through a diode. It should be noted that the circuitry illustrated in <figref idref="DRAWINGS">FIG. 14</figref>, and indeed that of <figref idref="DRAWINGS">FIG. 13</figref> and <figref idref="DRAWINGS">FIG. 15</figref> described below are intended to be in addition to any other circuitry provided in the remote component, whether a pendant or wire feeder. That is, those components may nevertheless include various sensing, processing, control, wire feed, and other circuitry of the types described above.
<figref idref="DRAWINGS">FIG. 15</figref> illustrates another exemplary circuit that may be used for current and/or power management in a remote device, in this case is particularly well-suited to a wire feeder of the type described above. The circuitry also includes a local power supply <b>272</b>, as well as storage devices <b>270</b>, in this case multiple capacitors. The application of current into the capacitors is delayed until a further capacitor <b>296</b> is charged through a resistor <b>298</b> to a gate threshold of a solid state switch <b>294</b>. This delay, then, prevents or reduces the likelihood of arcing when the component is initially coupled to a live welding power source. Moreover, a voltage across the capacitors is effectively limited by interaction of a second solid state switch <b>300</b> and a diode <b>302</b>. That is, when the diode <b>302</b> changes to a conductive state, the gate of switch <b>300</b> is powered, placing switch <b>294</b> in a non-conductive state. Current out of the capacitors passes through the internal diode of the package of switch <b>294</b>.
Various enhancements to the circuitry of <figref idref="DRAWINGS">FIG. 15</figref> may be easily envisaged, for example, a comparator could be provided between switch <b>294</b> and capacitor <b>296</b> to provide a “snap-on” operation in which the linear mode of switch <b>294</b> is effectively avoided. The circuitry thus provides a bi-directional, low impedance energy storage arrangement that effectively reduces or avoids arcing upon initial connection, while providing the desired local power supply capabilities and ride-through capabilities during operation.
While only certain features of the invention have been illustrated and described herein, many modifications and changes will occur to those skilled in the art. It is, therefore, to be understood that the appended claims are intended to cover all such modifications and changes as fall within the true spirit of the invention.
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| EP2345500A2 | Cites | European Patent Office (EPO) | Applicant |
| CN2684986A | Cites | China | Applicant |
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13 members in 7 offices
Priority claims6
| Document | Office | Kind | Date |
|---|---|---|---|
| 201261657467 | United States of America | P | |
| 201261657467 | United States of America | P | |
| 201313837747 | United States of America | A | |
| 61657467 | – | – | – |
| US201261657467P | – | – | – |
| US201313837747 | – | – | – |
Members13
| Document | Office | Kind | |
|---|---|---|---|
| US2013327753A1 | United States of America | A1 | |
| CA2870657A1 | Canada | A1 | |
| WO2013188190A2 | World Intellectual Property Organization (WIPO) | A2 | |
| WO2013188190A3 | World Intellectual Property Organization (WIPO) | A3 | |
| MX2014012298A | Mexico | A | |
| CN104379290A | China | A | |
| EP2858779A2 | European Patent Office (EPO) | A2 | |
| US9463523B2This record | United States of America | B2 | |
| MX346590B | Mexico | B | |
| CN104379290B | China | B | |
| BR112014027052A2 | Brazil | A2 | |
| CA2870657C | Canada | C | |
| EP2858779B1 | European Patent Office (EPO) | B1 |
72 transactions on the USPTO file
Allowed after 1 non-final rejection, 1 final rejection and 1 RCE.
- Non-final rejections
- 1
- Final rejections
- 1
- RCEs
- 1
- Appeals
- 0
Over time
Point at a mark for the transactionTransactions
| Event | Code | |
|---|---|---|
| Payment of Maintenance Fee, 8th Year, Large EntityM1552 | M1552 | |
| Payment of Maintenance Fee, 4th Year, Large EntityM1551 | M1551 | |
| Recordation of Patent Grant MailedPGM/ | PGM/ | |
| Patent Issue Date Used in PTA CalculationAllowedPTAC | PTAC | |
| Issue Notification MailedAllowedWPIR | WPIR | |
| Dispatch to FDCD1935 | D1935 | |
| Application Is Considered Ready for IssuePILS | PILS | |
| Printer Rush- No mailingTCPB | TCPB | |
| Mail Response to 312 Amendment (PTO-271)MN271 | MN271 | |
| Response to Amendment under Rule 312N271 | N271 | |
| Pubs Case Remand to TCPUBTC | PUBTC | |
| Amendment after Notice of Allowance (Rule 312)AllowedA.NA | A.NA | |
| Issue Fee Payment VerifiedN084 | N084 | |
| Issue Fee Payment ReceivedIFEE | IFEE | |
| Printer Rush- No mailingTCPB | TCPB | |
| Mail Miscellaneous Communication to ApplicantMM327 | MM327 | |
| Miscellaneous Communication to Applicant - No Action CountM327 | M327 | |
| Pubs Case Remand to TCPUBTC | PUBTC | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Reference capture on IDSRCAP | RCAP | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| Mail Notice of AllowanceAllowedMN/=. | MN/=. | |
| Notice of Allowance Data Verification CompletedAllowedN/=. | N/=. | |
| Reasons for AllowanceEX.R | EX.R | |
| Date Forwarded to ExaminerFWDX | FWDX | |
| Disposal for a RCE / CPA / R129AbandonedABN9 | ABN9 | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Reference capture on IDSRCAP | RCAP | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| Request for Continued Examination (RCE)RCEX | RCEX | |
| Workflow - Request for RCE - BeginBRCE | BRCE | |
| Mail Final Rejection (PTOL - 326)Final rejectionMCTFR | MCTFR | |
| Final RejectionFinal rejectionCTFR | CTFR | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Reference capture on IDSRCAP | RCAP | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| Date Forwarded to ExaminerFWDX | FWDX | |
| Response after Non-Final ActionA... | A... | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| Mail Non-Final RejectionNon-final rejectionMCTNF | MCTNF | |
| Non-Final RejectionNon-final rejectionCTNF | CTNF | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Reference capture on IDSRCAP | RCAP | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| Case Docketed to Examiner in GAUDOCK | DOCK | |
| Case Docketed to Examiner in GAUDOCK | DOCK | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| Reference capture on IDSRCAP | RCAP | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Reference capture on IDSRCAP | RCAP | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| PG-Pub Issue NotificationPG-ISSUE | PG-ISSUE | |
| Case Docketed to Examiner in GAUDOCK | DOCK | |
| Application Dispatched from OIPEOIPE | OIPE | |
| Application Is Now CompleteCOMP | COMP | |
| Change in Power of Attorney (May Include Associate POA)PA.. | PA.. | |
| Filing ReceiptFLRCPT.O | FLRCPT.O | |
| FITF set to NO - revise initial settingFTFI | FTFI | |
| Sent to Classification ContractorPGPC | PGPC | |
| Cleared by OIPE CSRL194 | L194 | |
| IFW Scan & PACR Auto Security ReviewSCAN | SCAN | |
| Applicants have given acceptable permission for participating foreignAPPERMS | APPERMS | |
| Initial Exam Team nnIEXX | IEXX |
5 legal events, as the office reported them to INPADOC
Over the term
Point at a mark for the eventEvents
| Event | Code | |
|---|---|---|
| Maintenance fee paymentMAFP | MAFP | |
| Maintenance fee paymentMAFP | MAFP | |
| Information on status: patent grantGrantedPATENTED CASESTCF | STCF | |
| Fee payment procedurePAYOR NUMBER ASSIGNED (ORIGINAL EVENT CODE: ASPN); ENTITY STATUS OF PATENT OWNER: LARGE ENTITYFEPP | FEPP | |
| AssignmentAS | AS |
Numbers
- Publication
- 09463523
- Publication, DOCDB
- 9463523
- Publication, EPODOC
- US9463523
- Application
- 13837747
- Application, DOCDB
- 201313837747
- Application, EPODOC
- US201313837747
Titles
- English
- Controlled waveform welding wire feeder system and method
Patent term adjustment
- A delay
- +384 daysthe office missed an examination deadline
- B delay
- +153 dayspendency past three years
- Applicant delay
- −111 days
- Net adjustment
- 426 days
Classification
- CPC, 3
- B23K9/124
- B23K9/09
- B23K9/1006
- IPC, 3
- B23K9 10
- B23K9 09
- B23K9 12
- USPC, 1
- 001001000